Separation of communication signal sub-bands in distributed antenna systems (DASs) to reduce interference
Separation of sub-bands of communications signals to reduce interference in distributed antenna systems (DASs) is disclosed. A sub-band separation circuit coupled to a plurality of antennas is configured to distribute and receive and transmit a pair of downlink and uplink sub-band signals. The sub-band separation circuit is coupled to a duplexed port of a remote unit that distributes uplink communications signals to the DAS and receives downlink communications signals from the DAS. In order to isolate the downlink communications signals from the uplink communications path in the remote unit, the isolation circuit includes a plurality of sub-band isolation circuits. Each sub-band isolation circuit is configured to isolate at least one sub-band of the downlink communications signal to generate a downlink sub-band signal that has a desired frequency separation or gap with uplink communication signals received at the duplexed port.
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The technology of the present disclosure relates generally to distributed antenna systems (DASs) for distributing communications services to remote areas each forming a coverage area and particularly to separation of communications signal sub-bands in DASs to reduce interference.
Wireless communication is rapidly growing, with ever-increasing demands for high-speed mobile data communication. As an example, local area wireless services (e.g., so-called “wireless fidelity” or “WiFi” systems) and wide area wireless services are being deployed in many different types of areas (e.g., coffee shops, airports, libraries, etc.). Distributed communications or antenna systems communicate with wireless devices called “clients,” “client devices,” or “wireless client devices,” which must reside within the wireless range or “cell coverage area” in order to communicate with an access point device. Distributed antenna systems are particularly useful to be deployed inside buildings or other indoor environments where client devices may not otherwise be able to effectively receive radio-frequency (RF) signals from a source, such as a base station for example. Example applications where distributed antenna systems can be used to provide or enhance coverage for wireless services include public safety, cellular telephony, wireless local access networks (LANs), location tracking, and medical telemetry inside buildings and over campuses.
One approach to deploying a distributed antenna system involves the use of RF antenna coverage areas, also referred to as “antenna coverage areas.” Antenna coverage areas can be formed by remotely distributed antenna units, also referred to as remote units (RUs). The remote units each contain or are configured to couple to one or more antennas configured to support the desired frequency(ies) or polarization to provide the antenna coverage areas. Antenna coverage areas can have a radius in the range from a few meters up to twenty meters as an example. Combining a number of remote units creates an array of antenna coverage areas. Because the antenna coverage areas each cover small areas, there typically may be only a few users (clients) per antenna coverage area. This arrangement generates a uniform high quality signal enabling high throughput supporting the required capacity for the wireless system users.
As an example,
The equipment in the DAS 12 in
In this regard,
With continuing reference to
Embodiments disclosed herein include separation of sub-bands of communications signals to reduce interference in distributed antenna systems (DASs). Related devices and methods of separation of sub-bands of communications signals, including, without limitation, radio frequency (RF) signals, in DASs are also disclosed. A sub-band separation circuit coupled to a plurality of antennas is provided, with the sub-band separation circuit configured to distribute and receive and transmit a pair of downlink and uplink sub-band signals via each antenna. The sub-band separation circuit is coupled to a duplexed port of a remote unit that distributes uplink communications signals to the DAS and receives downlink communications signals from the DAS to be communicated over the antenna of the remote unit. In order to isolate the downlink communications signals from the uplink communications path in the remote unit, the isolation circuit includes a plurality of sub-band isolation circuits. Each sub-band isolation circuit is configured to isolate at least one sub-band of the downlink communications signal to generate a downlink sub-band signal that has a desired frequency separation or gap with uplink communication signals received at the duplexed port.
In this manner, the isolation provided by the sub-band separation circuit between the downlink and uplink communications paths increases the frequency gap between each pair of downlink and uplink communications signals for each sub-band isolation circuit. Therefore, the DAS employing the sub-band separation circuit may be used to support communications services where the frequency gap between the downlink and uplink communications signals is small (e.g., <=10 MHz) that may otherwise cause distortion in the downlink and/or uplink communications signals if a single duplexer were employed.
In this regard, in one embodiment, a sub-band separation circuit for providing band separation between sub-bands of downlink communications signals and uplink communications signals in a remote unit of DAS is provided. The sub-band separation circuit comprises a downlink splitter. The downlink splitter is configured to receive a downlink communications signal having a downlink bandwidth comprising a plurality of downlink communications sub-bands on a downlink splitter input. The downlink splitter is further configured to split the received downlink communications signal into a plurality of split downlink communications signals on a plurality of splitter outputs. The sub-band separation circuit further comprises a plurality of sub-band isolation circuits. Each sub-band isolation circuit comprises a downlink isolation circuit. Each downlink isolation circuit is configured to receive a split downlink communications signal among the plurality of split downlink communications signals from a split output among the plurality of splitter outputs. Each downlink isolation circuit is further configured to isolate at least one downlink communications sub-band among the plurality of downlink communications sub-bands in the split downlink communications signal to generate a communications sub-band signal. Each sub-band isolation circuit further comprises a duplexer. Each duplexer is configured to receive the communications sub-band signal on a downlink duplexer input. Each duplexer is further configured to receive an uplink communications signal on an antenna interface coupled to an antenna. Each duplexer is further configured to pass the communications sub-band signal to the antenna interface.
In another embodiment, a method providing band separation between sub-bands of downlink communications signals and uplink communications signals in a remote unit of a DAS is disclosed. The method comprises receiving a downlink communications signal having a downlink bandwidth comprising a plurality of downlink communications sub-bands on a downlink splitter input. The method further comprises splitting the received downlink communications signal into a plurality of split downlink communications signals. The method further comprises, for each split downlink communications signal, isolating at least one downlink communications sub-band among the plurality of downlink communications sub-bands in the split downlink communications signal to generate a communications sub-band signal. The method further comprises passing each communications sub-band signal to an antenna interface of a respective duplexer.
In another embodiment, a DAS is disclosed. The DAS comprises head end equipment (HEE) and a plurality of remote units. Each remote unit is configured to receive at least one downlink communications signal from the HEE and transmit at least one uplink communications signal to the HEE. Each remote unit comprises a sub-band separation circuit for providing band separation between sub-bands of the at least one downlink communications signal and the at least one uplink communications signal in the remote unit. Each sub-band separation circuit comprises a downlink splitter. The downlink splitter is configured to receive a downlink communications signal having a downlink bandwidth comprising a plurality of downlink communications sub-bands on a downlink splitter input. The downlink splitter is further configured to split the received downlink communications signal into a plurality of split downlink communications signals on a plurality of splitter outputs. Each sub-band separation circuit further comprises a plurality of sub-band isolation circuits. Each sub-band isolation circuit comprises a downlink isolation circuit. Each downlink isolation circuit is configured to receive a split downlink communications signal among the plurality of split downlink communications signals from a split output among the plurality of splitter outputs. Each downlink isolation circuit is further configured to isolate at least one downlink communications sub-band among the plurality of downlink communications sub-bands in the split downlink communications signal to generate a communications sub-band signal. Each sub-band isolation circuit further comprises a duplexer. Each duplexer is configured to receive the communications sub-band signal on a downlink duplexer input. Each duplexer is further configured to receive an uplink communications signal on an antenna interface coupled to an antenna. Each duplexer is further configured to pass the communications sub-band signal to the antenna interface.
Additional features and advantages will be set forth in the detailed description which follows, and in part, will be readily apparent to those skilled in the art from the description or recognized by practicing the embodiments as described in the written description and claims hereof, as well as the appended drawings.
It is to be understood that both the foregoing general description and the following detailed description are merely exemplary, and are intended to provide an overview or framework to understand the nature and character of the claims. The accompanying drawings are included to provide a further understanding and are incorporated in and constitute a part of this specification. The drawings illustrate one or more embodiment(s), and together with the description serve to explain the principles and operation of the various embodiments.
Various embodiments will be further clarified by the following examples.
Embodiments disclosed herein include separation of sub-bands of communications signals to reduce interference in distributed antenna systems (DASs). Related devices and methods of separation of sub-bands of communications signals, including, without limitation, radio frequency (RF) signals, in DASs are also disclosed. A sub-band separation circuit coupled to a plurality of antennas is provided, with the sub-band separation circuit configured to distribute and receive and transmit a pair of downlink and uplink sub-band signals via each antenna. The sub-band separation circuit is coupled to a duplexed port of a remote unit that distributes uplink communications signals to the DAS and receives downlink communications signals from the DAS to be communicated over the antenna of the remote unit. In order to isolate the downlink communications signals from the uplink communications path in the remote unit, the isolation circuit includes a plurality of sub-band isolation circuits. Each sub-band isolation circuit is configured to isolate at least one sub-band of the downlink communications signal to generate a downlink sub-band signal that has a desired frequency separation or gap with uplink communication signals received at the duplexed port.
In this manner, the isolation provided by the sub-band separation circuit between the downlink and uplink communications paths increases the frequency gap between each pair of downlink and uplink communications signals for each sub-band isolation circuit. Therefore, the DAS employing the sub-band separation circuit may be used to support communications services where the frequency gap between the downlink and uplink communications signals is small (e.g., <10 MHz) that may otherwise cause distortion in the downlink and/or uplink communications signals if a single duplexer were employed.
In this regard,
However, as shown by
In this regard,
This arrangement reduces leakage into the complementary sub-band of the uplink RF signal 20U for each downlink sub-band signal 20D(1)-20D(N), the advantages of which will be further described below. In addition, this arrangement allows each individual downlink sub-band signal 20D(1)-20D(N) to be individually amplified, thereby increasing the coverage area of each downlink sub-band signal 20D(1)-20D(N).
It should be noted that leakage from a given downlink sub-band signal 20D(N) to the uplink RF signal 20U may still occur at the respective remote duplexer 34(R)(N). For example, the minimum frequency of downlink sub-band signal 20D(1) in this embodiment is the same as the minimum frequency of downlink RF signal 20D. Thus, the separation between downlink sub-band signal 20D(1) and uplink RF signal 20U in remote duplexer 34(R)(1) (e.g., 10 MHz), is not increased, and may result in leakage from downlink sub-band signal 20D(1) to the higher-frequency portions of uplink RF signal 20U (e.g., where N=2, uplink sub-band signal 20U(2)). However, because isolation circuit 46(1) is only concerned with uplink sub-band signal 20U(1), the frequencies most affected by the leakage from downlink sub-band signal 20D(1) (i.e., frequencies in uplink sub-band signal 20U(2) in this example) are filtered out and discarded by uplink isolation circuit 48U(1). Meanwhile, every other uplink isolation circuit 48(N) is likewise able to generate a “clean” uplink sub-band signal 20U(N) because the only potential source of downlink signal leakage is the complementary downlink sub-band signal 20D(N).
Thus, because each uplink sub-band signal 20U(1)-20U(N) is sufficiently separated from the complementary downlink sub-band signal 20D(1)-20D(N), each uplink sub-band signal 20U(1)-20U(N) generated by a respective uplink isolation circuit 48U(1)-48U(N) represents a “clean” version of that particular sub-band of the original uplink RF signal 20U. As discussed above, the plurality of uplink sub-band signals 20U(1)-20U(N) are next output to an uplink combiner 50, which reconstructs the original uplink RF signal 20U from the component uplink sub-band signals 20U(1)-20U(N) and outputs uplink RF signal 20U to uplink path circuit 28U.
In some alternative embodiments, the uplink sub-band isolation circuits 48U may be omitted. For example, because the separation of the downlink RF signal 20D into downlink sub-band signals 20D(1)-20D(N) creates separation between most of the downlink sub-band signals 20D(1)-20D(N) and the uplink RF signal 20U by itself, it may be desirable to pass the uplink RF signal 20U from one or more of the sub-band isolation circuits 46 having sufficient separation to avoid interference between the uplink RF signal 20U and the respective downlink sub-band signals 20D(1)-20D(N). For sub-band isolation circuits 46 having insufficient separation between the downlink sub-band signal 20D(1)-20D(N), any uplink RF signal 20U received from that sub-band isolation circuit 46 can simply be ignored or discarded.
As discussed above, each sub-band isolation circuit 46(1)-46(N) includes a downlink isolation circuit 48D for generating a downlink sub-band signal 20D(N) and an uplink isolation circuit 48U for generating an uplink sub-band signal 20U(N). In this regard,
Before discussing exemplary downlink sub-band isolation circuit 48D(1), it should be understood that exemplary components of downlink path circuits 28D may include, for example, downlink photodiode 52, broadband amplifier 54, and broadband filter 56, for converting downlink communications signal 20D from optical to RF before being split by downlink splitter 44. Likewise, exemplary components of uplink path circuits 28D may include, for example, broadband filter 58, broadband amplifier 60, and uplink photodiode 62, for converting uplink communications signal 20U received from uplink combiner 50 from RF to optical.
Turning now to downlink sub-band isolation circuit 48D(1), the split downlink RF signal 20D is received from the downlink splitter 44 at a first downlink mixer 64(1). The mixer downconverts the downlink RF signal 20D to an intermediate frequency (IF) signal. Downlink sub-band filter 66(1) then receives the IF signal from the first downlink mixer 64(1) and passes only IF frequencies corresponding to the RF frequencies of downlink sub-band signal 20D(1) (e.g., 1950 MHz-1965 MHz). In this embodiment, the downlink RF signal 20D is downconverted to an IF band in order to more easily and more accurately filter the signals corresponding to the downlink sub-band signal 20D(1). In other embodiments, the downlink RF signal 20D may be filtered directly, without including an IF downconverting step.
In the embodiment of
Exemplary uplink sub-band isolation circuit 48U(1) operates in a similar manner to downlink sub-band isolation circuit 48D(1). In this embodiment, uplink RF signal 20U is received from the remote duplexer 34(R)(1) by a low noise amplifier (LNA) 74(1) and filtered by conventional filter 76(1). As discussed above, the uplink RF signal 20U may include a small amount of leakage from the downlink sub-band signal 20D(1), but this leakage is minimized by the generation of the downlink sub-band signal 20D(1). In addition, as will be discussed below, the corresponding uplink sub-band signal 20U(1) has sufficient separation from the downlink sub-band signal 20D(1) such that, if any leakage occurs, the portion of the uplink RF signal 20U affected by such leakage will not be part of the corresponding uplink sub-band signal 20U(1).
Turning back to the internal components of uplink sub-band isolation circuit 48U(1) of
As with the downlink sub-band isolation circuit 48D(1) above, in this embodiment, the uplink RF signal 20D is downconverted in the uplink sub-band isolation circuit 48U(1) to an IF band in order to more easily and more accurately filter the signals corresponding to the uplink sub-band signal 20U(1). In other embodiments, the uplink RF signal 20U may be filtered directly, without including an IF downconverting step. In the embodiment of
The above described embodiments may be adapted for use with different numbers of sub-bands within each pair of downlink and uplink RF signals 20D, 20U. In this regard,
The DAS 12 employing the sub-band separation circuit 42 in
For example, as discussed in more detail below, the DAS 12 in this embodiment is configured to receive the downlink communications signals 20D and distribute the downlink communications signals 20D to remote units 14. For example, if the DAS 12 is an optical fiber-based DAS as illustrated in
With continuing reference to
The main cable 98 enables multiple optical fiber cables 106 to be distributed throughout the building infrastructure 84 (e.g., fixed to the ceilings or other support surfaces of each floor 88, 90, 92) to provide the antenna coverage areas 96 for the first, second, and third floors 88, 90 and 92. In an example embodiment, the head-end unit 16 is located within the building infrastructure 84 (e.g., in a closet or control room), while in another example embodiment, the head-end unit 16 may be located outside of the building infrastructure 84 at a remote location. The base station 18, which may be provided by a second party such as a cellular service provider, is connected to the head-end unit 16 through the duplexer port 32, as previously discussed. The base station 18 is any station or signal source that provides the downlink communications signals 20D to the head-end unit 16 and can receive return uplink communications signals 20U from the head-end unit 16.
The embodiments disclosed herein include various steps. The steps of the embodiments disclosed herein may be formed by hardware components or may be embodied in machine-executable instructions, which may be used to cause a general-purpose or special-purpose processor programmed with the instructions to perform the steps. Alternatively, the steps may be performed by a combination of hardware and software.
The embodiments disclosed herein may be provided as a computer program product, or software, that may include a machine-readable medium (or computer-readable medium) having stored thereon instructions, which may be used to program a computer system (or other electronic devices) to perform a process according to the embodiments disclosed herein. A machine-readable medium includes any mechanism for storing or transmitting information in a form readable by a machine (e.g., a computer). For example, a machine-readable medium includes: a machine-readable storage medium (e.g., ROM, random access memory (“RAM”), a magnetic disk storage medium, an optical storage medium, flash memory devices, etc.); and the like.
Unless specifically stated otherwise and as apparent from the previous discussion, it is appreciated that throughout the description, discussions utilizing terms such as “processing,” “computing,” “determining,” “displaying,” or the like, refer to the action and processes of a computer system, or similar electronic computing device, that manipulates and transforms data and memories represented as physical (electronic) quantities within the computer system's registers into other data similarly represented as physical quantities within the computer system memories or registers or other such information storage, transmission, or display devices.
The algorithms and displays presented herein are not inherently related to any particular computer or other apparatus. Various systems may be used with programs in accordance with the teachings herein, or it may prove convenient to construct more specialized apparatuses to perform the required method steps. The required structure for a variety of these systems will appear from the description above. In addition, the embodiments described herein are not described with reference to any particular programming language. It will be appreciated that a variety of programming languages may be used to implement the teachings of the embodiments as described herein.
Those of skill in the art will further appreciate that the various illustrative logical blocks, modules, circuits, and algorithms described in connection with the embodiments disclosed herein may be implemented as electronic hardware, instructions stored in memory or in another computer-readable medium and executed by a processor or other processing device, or combinations of both. The components of the distributed antenna systems described herein may be employed in any circuit, hardware component, integrated circuit (IC), or IC chip, as examples. Memory disclosed herein may be any type and size of memory and may be configured to store any type of information desired. To clearly illustrate this interchangeability, various illustrative components, blocks, modules, circuits, and steps have been described above generally in terms of their functionality. How such functionality is implemented depends on the particular application, design choices, and/or design constraints imposed on the overall system. Skilled artisans may implement the described functionality in varying ways for each particular application, but such implementation decisions should not be interpreted as causing a departure from the scope of the present embodiments.
The various illustrative logical blocks, modules, and circuits described in connection with the embodiments disclosed herein may be implemented or performed with a processor, a Digital Signal Processor (DSP), an Application Specific Integrated Circuit (ASIC), a Field Programmable Gate Array (FPGA), or other programmable logic device, a discrete gate or transistor logic, discrete hardware components, or any combination thereof designed to perform the functions described herein. Furthermore, a controller may be a processor. A processor may be a microprocessor, but in the alternative, the processor may be any conventional processor, controller, microcontroller, or state machine. A processor may also be implemented as a combination of computing devices (e.g., a combination of a DSP and a microprocessor, a plurality of microprocessors, one or more microprocessors in conjunction with a DSP core, or any other such configuration).
The embodiments disclosed herein may be embodied in hardware and in instructions that are stored in hardware, and may reside, for example, in RAM, flash memory, ROM, Electrically Programmable ROM (EPROM), Electrically Erasable Programmable ROM (EEPROM), registers, a hard disk, a removable disk, a CD-ROM, or any other form of computer-readable medium known in the art. An exemplary storage medium is coupled to the processor such that the processor can read information from, and write information to, the storage medium. In the alternative, the storage medium may be integral to the processor. The processor and the storage medium may reside in an ASIC. The ASIC may reside in a remote station. In the alternative, the processor and the storage medium may reside as discrete components in a remote station, base station, or server.
It is also noted that the operational steps described in any of the exemplary embodiments herein are described to provide examples and discussion. The operations described may be performed in numerous different sequences other than the illustrated sequences. Furthermore, operations described in a single operational step may actually be performed in a number of different steps. Additionally, one or more operational steps discussed in the exemplary embodiments may be combined. Those of skill in the art will also understand that information and signals may be represented using any of a variety of technologies and techniques. For example, data, instructions, commands, information, signals, bits, symbols, and chips, that may be references throughout the above description, may be represented by voltages, currents, electromagnetic waves, magnetic fields, or particles, optical fields or particles, or any combination thereof.
Unless otherwise expressly stated, it is in no way intended that any method set forth herein be construed as requiring that its steps be performed in a specific order. Accordingly, where a method claim does not actually recite an order to be followed by its steps or it is not otherwise specifically stated in the claims or descriptions that the steps are to be limited to a specific order, it is no way intended that any particular order be inferred.
It will be apparent to those skilled in the art that various modifications and variations can be made without departing from the spirit or scope of the invention. Since modifications combinations, sub-combinations and variations of the disclosed embodiments incorporating the spirit and substance of the invention may occur to persons skilled in the art, the invention should be construed to include everything within the scope of the appended claims and their equivalents.
Claims
1. A sub-band separation circuit for providing band separation between sub-bands of downlink communications signals and uplink communications signals in a remote unit of a distributed antenna system (DAS), comprising:
- a downlink splitter configured to: receive a downlink communications signal having a downlink bandwidth comprising a plurality of downlink communications sub-bands on a downlink splitter input; and split the received downlink communications signal into a plurality of split downlink communications signals on a plurality of splitter outputs;
- a plurality of sub-band isolation circuits, each sub-band isolation circuit comprising: a downlink isolation circuit configured to: receive a split downlink communications signal among the plurality of split downlink communications signals from a split output among the plurality of splitter outputs; and isolate at least one downlink communications sub-band among the plurality of downlink communications sub-bands in the split downlink communications signal to generate a communications sub-band signal; and a duplexer configured to: receive the communications sub-band signal on a downlink duplexer input; receive an uplink communications signal on an antenna interface coupled to an antenna; and pass the communications sub-band signal to the antenna interface.
2. The sub-band separation circuit of claim 1, wherein each sub-band isolation circuit further comprises an uplink isolation circuit configured to:
- receive the uplink communications signal from the duplexer, wherein the uplink communications signal has an uplink bandwidth comprising a plurality of uplink communications sub-bands; and
- isolate at least one uplink communications sub-band among the plurality of uplink communications sub-bands in the uplink communications signal to generate an uplink communications sub-band signal;
- wherein the sub-band separation circuit further comprises an uplink combiner configured to: receive the plurality of uplink communications sub-band signals from the plurality of sub-band isolation circuits on a respective plurality of uplink combiner inputs; and combine the plurality of uplink communications sub-band signals into the uplink communications signal on an uplink combiner output.
3. The sub-band separation circuit of claim 2, wherein, for each sub-band isolation circuit, the difference between a minimum frequency of the sub-band of the corresponding downlink sub-band signal and a maximum frequency of the sub-band of the corresponding uplink communications sub-band signal is larger than a minimum frequency of the downlink bandwidth and a maximum frequency of the uplink bandwidth.
4. The sub-band separation circuit of claim 2, wherein, for each sub-band isolation circuit, the difference between a minimum frequency of the sub-band of the corresponding uplink communications sub-band signal and a maximum frequency of the sub-band of the corresponding downlink sub-band signal is larger than a minimum frequency of the uplink bandwidth and a maximum frequency of the downlink bandwidth.
5. The sub-band separation circuit of claim 2, wherein a minimum frequency of one of the downlink bandwidth and uplink bandwidth is equal to or less than 10 MHz higher than a maximum frequency of the other of the downlink bandwidth and uplink bandwidth.
6. The sub-band separation circuit of claim 1, wherein the downlink and uplink communications signals are RF signals, and, for each sub-band isolation circuit, the downlink isolation circuit comprises:
- a first downlink mixer configured to receive the downlink RF signal and downconvert the downlink RF signal to a downlink intermediate frequency (IF) signal corresponding to the downlink RF signal;
- a downlink sub-band filter configured to receive the downlink IF signal and filter the downlink IF signal and generate a downlink IF sub-band signal corresponding to the downlink RF sub-band signal associated with the sub-band isolation circuit;
- a second downlink mixer configured to receive the downlink IF sub-band signal and upconvert the downlink IF sub-band signal to the downlink sub-band signal associated with the sub-band isolation circuit.
7. The sub-band separation circuit of claim 2, wherein the downlink and uplink RF communications signals are RF signals, and, for each sub-band isolation circuit, the uplink isolation circuit comprises:
- a first uplink mixer configured to receive the uplink RF signal and downconvert the uplink RF signal to an uplink intermediate frequency (IF) signal corresponding to the uplink RF signal;
- an uplink sub-band filter configured to receive the uplink IF signal and filter the uplink IF signal and generate an uplink IF sub-band signal corresponding to the uplink RF sub-band signal associated with the sub-band isolation circuit;
- a second uplink mixer configured to receive the uplink IF sub-band signal and upconvert the uplink IF sub-band signal to the uplink communications sub-band signal associated with the sub-band isolation circuit.
8. The sub-band separation circuit of claim 7, wherein, for each sub-band isolation circuit, the downlink isolation circuit comprises:
- a first downlink mixer configured to receive the downlink RF signal and downconvert the downlink RF signal to a downlink intermediate frequency (IF) signal corresponding to the downlink RF signal;
- a downlink sub-band filter configured to receive the downlink IF signal and filter the downlink IF signal and generate a downlink IF sub-band signal corresponding to the downlink RF sub-band signal associated with the sub-band isolation circuit;
- a second downlink mixer configured to receive the downlink IF sub-band signal and upconvert the downlink IF sub-band signal to the downlink sub-band signal associated with the sub-band isolation circuit.
9. A method providing band separation between sub-bands of downlink communications signals and uplink communications signals in a remote unit of a distributed antenna system (DAS), the method comprising:
- receiving a downlink communications signal having a downlink bandwidth comprising a plurality of downlink communications sub-bands on a downlink splitter input;
- splitting the received downlink communications signal into a plurality of split downlink communications signals;
- for each split downlink communications signal, isolating at least one downlink communications sub-band among the plurality of downlink communications sub-bands in the split downlink communications signal to generate a communications sub-band signal; and
- passing each communications sub-band signal to an antenna interface of a respective duplexer.
10. The method of claim 9, further comprising:
- for each duplexer, receiving, via the antenna interface, an uplink communications signal having an uplink bandwidth comprising a plurality of uplink communications sub-bands;
- for each duplexer, isolating at least one uplink communications sub-band among the plurality of uplink communications sub-bands in the uplink communications signal to generate an uplink communications sub-band signal; and
- combining the plurality of uplink communications sub-band signals into the uplink communications signal.
11. The method of claim 10, wherein, for each duplexer, the difference between a minimum frequency of the sub-band of the corresponding downlink sub-band signal and a maximum frequency of the sub-band of the corresponding uplink communications sub-band signal is larger than a minimum frequency of the downlink bandwidth and a maximum frequency of the uplink bandwidth.
12. The method of claim 10, wherein, for each duplexer, the difference between a minimum frequency of the sub-band of the corresponding uplink communications sub-band signal and a maximum frequency of the sub-band of the corresponding downlink sub-band signal is larger than a minimum frequency of the uplink bandwidth and a maximum frequency of the downlink bandwidth.
13. The method of claim 10, wherein a minimum frequency of one of the downlink bandwidth and uplink bandwidth is equal to or less than 10 MHz higher than a maximum frequency of the other of the downlink bandwidth and uplink bandwidth.
14. The method of claim 9, wherein the downlink and uplink communications communications signals are RF signals, and isolating each downlink communications sub-band comprises:
- downconverting the downlink RF signal to a downlink intermediate frequency (IF) signal corresponding to the downlink RF signal;
- filtering the downlink IF signal to generate a downlink IF sub-band signal corresponding to the downlink RF sub-band signal; and
- upconverting the downlink IF sub-band signal to the downlink sub-band signal.
15. The sub-band separation circuit of claim 10, wherein the downlink and uplink communications signals are RF signals and isolating each uplink communications sub-band signal comprises:
- downconverting the uplink RF signal to an uplink intermediate frequency (IF) signal corresponding to the uplink RF signal;
- filtering the uplink IF signal to generate an uplink IF sub-band signal corresponding to the uplink RF sub-band signal; and
- upconverting the uplink IF sub-band signal to the uplink communications sub-band signal.
16. The sub-band separation circuit of claim 15, wherein isolating each downlink RF sub-band comprises:
- downconverting the downlink RF signal to a downlink intermediate frequency (IF) signal corresponding to the downlink RF signal;
- filtering the downlink IF signal to generate a downlink IF sub-band signal corresponding to the downlink RF sub-band signal; and
- upconverting the downlink IF sub-band signal to the downlink sub-band signal.
17. A distributed antenna system (DAS) comprising:
- head-end equipment (HEE);
- a plurality of remote units, each configured to receive at least one downlink communications signal from the HEE and transmit at least one uplink communications signal to the HEE, each remote unit comprising: a sub-band separation circuit for providing band separation between sub-bands of the at least one downlink communications signal and the at least one uplink communications signal in the remote unit, comprising: a downlink splitter configured to: receive a downlink communications signal having a downlink bandwidth comprising a plurality of downlink communications sub-bands on a downlink splitter input; and split the received downlink communications signal into a plurality of split downlink communications signals on a plurality of splitter outputs; a plurality of sub-band isolation circuits, each sub-band isolation circuit comprising: a downlink isolation circuit configured to: receive a split downlink communications signal among the plurality of split downlink communications signals from a split output among the plurality of splitter outputs; and isolate at least one downlink communications sub-band among the plurality of downlink communications sub-bands in the split downlink communications signal to generate a communications sub-band signal; and a duplexer configured to: receive the communications sub-band signal on a downlink duplexer input; receive an uplink communications signal on an antenna interface coupled to an antenna; and pass the communications sub-band signal to the antenna interface.
18. The DAS of claim 17, wherein each sub-band isolation circuit further comprises an uplink isolation circuit configured to:
- receive the uplink communications signal from the duplexer, wherein the uplink communications signal has an uplink bandwidth comprising a plurality of uplink communications sub-bands; and
- isolate at least one uplink communications sub-band among the plurality of uplink communications sub-bands in the uplink communications signal to generate an uplink communications sub-band signal;
- wherein the sub-band separation circuit further comprises an uplink combiner configured to: receive the plurality of uplink communications sub-band signals from the plurality of sub-band isolation circuits on a respective plurality of uplink combiner inputs; and combine the plurality of uplink communications sub-band signals into the uplink communications signal on an uplink combiner output.
19. The DAS of claim 18, wherein, for each sub-band isolation circuit, the difference between a minimum frequency of the sub-band of the corresponding downlink sub-band signal and a maximum frequency of the sub-band of the corresponding uplink sub-band signal is larger than a minimum frequency of the downlink bandwidth and a maximum frequency of the uplink bandwidth.
20. The DAS of claim 18, wherein, for each sub-band isolation circuit, the difference between a minimum frequency of the sub-band of the corresponding uplink sub-band signal and a maximum frequency of the sub-band of the corresponding downlink sub-band signal is larger than a minimum frequency of the uplink bandwidth and a maximum frequency of the downlink bandwidth.
21. The DAS of claim 18, wherein a minimum frequency of one of the downlink bandwidth and uplink bandwidth is equal to or less than 10 MHz higher than a maximum frequency of the other of the downlink bandwidth and uplink bandwidth.
22. The DAS of claim 17, wherein the downlink and uplink communications signals are RF signals, and, for each sub-band isolation circuit, the downlink isolation circuit comprises:
- a first downlink mixer configured to receive the downlink RF signal and downconvert the downlink RF signal to a downlink intermediate frequency (IF) signal corresponding to the downlink RF signal;
- a downlink sub-band filter configured to receive the downlink IF signal and filter the downlink IF signal and generate a downlink IF sub-band signal corresponding to the downlink RF sub-band signal associated with the sub-band isolation circuit; and
- a second downlink mixer configured to receive the downlink IF sub-band signal and upconvert the downlink IF sub-band signal to the downlink sub-band signal associated with the sub-band isolation circuit.
23. The DAS of claim 18, wherein the downlink and uplink communications signals are RF signals, and, for each sub-band isolation circuit, the uplink isolation circuit comprises:
- a first uplink mixer configured to receive the uplink RF signal and downconvert the uplink RF signal to an uplink intermediate frequency (IF) signal corresponding to the uplink RF signal;
- an uplink sub-band filter configured to receive the uplink IF signal and filter the uplink IF signal and generate an uplink IF sub-band signal corresponding to the uplink RF sub-band signal associated with the sub-band isolation circuit; and
- a second uplink mixer configured to receive the uplink IF sub-band signal and upconvert the uplink IF sub-band signal to the uplink sub-band signal associated with the sub-band isolation circuit.
24. The DAS of claim 23, wherein, for each sub-band isolation circuit, the downlink isolation circuit comprises:
- a first downlink mixer configured to receive the downlink RF signal and downconvert the downlink RF signal to a downlink intermediate frequency (IF) signal corresponding to the downlink RF signal;
- a downlink sub-band filter configured to receive the downlink IF signal and filter the downlink IF signal and generate a downlink IF sub-band signal corresponding to the downlink RF sub-band signal associated with the sub-band isolation circuit; and
- a second downlink mixer configured to receive the downlink IF sub-band signal and upconvert the downlink IF sub-band signal to the downlink sub-band signal associated with the sub-band isolation circuit.
| 4365865 | December 28, 1982 | Stiles |
| 4449246 | May 15, 1984 | Seiler et al. |
| 4573212 | February 25, 1986 | Lipsky |
| 4665560 | May 1987 | Lange |
| 4867527 | September 19, 1989 | Dotti et al. |
| 4889977 | December 26, 1989 | Haydon |
| 4896939 | January 30, 1990 | O'Brien |
| 4916460 | April 10, 1990 | Powell |
| 4939852 | July 10, 1990 | Brenner |
| 4972346 | November 20, 1990 | Kawano et al. |
| 5039195 | August 13, 1991 | Jenkins et al. |
| 5042086 | August 1991 | Cole et al. |
| 5056109 | October 8, 1991 | Gilhousen et al. |
| 5059927 | October 22, 1991 | Cohen |
| 5125060 | June 23, 1992 | Edmundson |
| 5187803 | February 16, 1993 | Sohner et al. |
| 5189718 | February 23, 1993 | Barrett et al. |
| 5189719 | February 23, 1993 | Coleman et al. |
| 5206655 | April 27, 1993 | Caille et al. |
| 5208812 | May 4, 1993 | Dudek et al. |
| 5210812 | May 11, 1993 | Nilsson et al. |
| 5260957 | November 9, 1993 | Hakimi et al. |
| 5263108 | November 16, 1993 | Kurokawa et al. |
| 5267122 | November 30, 1993 | Glover et al. |
| 5268971 | December 7, 1993 | Nilsson et al. |
| 5278690 | January 11, 1994 | Vella-Coleiro |
| 5278989 | January 11, 1994 | Burke et al. |
| 5280472 | January 18, 1994 | Gilhousen et al. |
| 5299947 | April 5, 1994 | Barnard |
| 5301056 | April 5, 1994 | O'Neill |
| 5325223 | June 28, 1994 | Bears |
| 5339058 | August 16, 1994 | Lique |
| 5339184 | August 16, 1994 | Tang |
| 5343320 | August 30, 1994 | Anderson |
| 5377035 | December 27, 1994 | Wang et al. |
| 5379455 | January 3, 1995 | Koschek |
| 5381459 | January 10, 1995 | Lappington |
| 5396224 | March 7, 1995 | Dukes et al. |
| 5400391 | March 21, 1995 | Emura et al. |
| 5420863 | May 30, 1995 | Taketsugu et al. |
| 5424864 | June 13, 1995 | Emura |
| 5444564 | August 22, 1995 | Newberg |
| 5457557 | October 10, 1995 | Zarem et al. |
| 5459727 | October 17, 1995 | Vannucci |
| 5469523 | November 21, 1995 | Blew et al. |
| 5519830 | May 21, 1996 | Opoczynski |
| 5543000 | August 6, 1996 | Lique |
| 5546443 | August 13, 1996 | Raith |
| 5557698 | September 17, 1996 | Gareis et al. |
| 5574815 | November 12, 1996 | Kneeland |
| 5598288 | January 28, 1997 | Collar |
| 5606725 | February 25, 1997 | Hart |
| 5615034 | March 25, 1997 | Hori |
| 5627879 | May 6, 1997 | Russell et al. |
| 5640678 | June 17, 1997 | Ishikawa et al. |
| 5642405 | June 24, 1997 | Fischer et al. |
| 5644622 | July 1, 1997 | Russell et al. |
| 5648961 | July 15, 1997 | Ebihara |
| 5651081 | July 22, 1997 | Blew et al. |
| 5657374 | August 12, 1997 | Russell et al. |
| 5668562 | September 16, 1997 | Cutrer et al. |
| 5677974 | October 14, 1997 | Elms et al. |
| 5682256 | October 28, 1997 | Motley et al. |
| 5694232 | December 2, 1997 | Parsay et al. |
| 5703602 | December 30, 1997 | Casebolt |
| 5708681 | January 13, 1998 | Malkemes et al. |
| 5726984 | March 10, 1998 | Kubler et al. |
| 5765099 | June 9, 1998 | Georges et al. |
| 5790536 | August 4, 1998 | Mahany et al. |
| 5790606 | August 4, 1998 | Dent |
| 5793772 | August 11, 1998 | Burke et al. |
| 5802173 | September 1, 1998 | Hamilton-Piercy et al. |
| 5802473 | September 1, 1998 | Rutledge et al. |
| 5805975 | September 8, 1998 | Green, Sr. et al. |
| 5805983 | September 8, 1998 | Naidu et al. |
| 5809395 | September 15, 1998 | Hamilton-Piercy et al. |
| 5809431 | September 15, 1998 | Bustamante et al. |
| 5812296 | September 22, 1998 | Tarusawa et al. |
| 5818619 | October 6, 1998 | Medved et al. |
| 5818883 | October 6, 1998 | Smith et al. |
| 5821510 | October 13, 1998 | Cohen et al. |
| 5825651 | October 20, 1998 | Gupta et al. |
| 5838474 | November 17, 1998 | Stilling |
| 5839052 | November 17, 1998 | Dean et al. |
| 5852651 | December 22, 1998 | Fischer et al. |
| 5854986 | December 29, 1998 | Dorren et al. |
| 5859719 | January 12, 1999 | Dentai et al. |
| 5862460 | January 19, 1999 | Rich |
| 5867485 | February 2, 1999 | Chambers et al. |
| 5867763 | February 2, 1999 | Dean et al. |
| 5881200 | March 9, 1999 | Burt |
| 5883882 | March 16, 1999 | Schwartz |
| 5896568 | April 20, 1999 | Tseng et al. |
| 5903834 | May 11, 1999 | Wallstedt et al. |
| 5910776 | June 8, 1999 | Black |
| 5913003 | June 15, 1999 | Arroyo et al. |
| 5917636 | June 29, 1999 | Wake et al. |
| 5930682 | July 27, 1999 | Schwartz et al. |
| 5936754 | August 10, 1999 | Ariyavisitakul et al. |
| 5943372 | August 24, 1999 | Gans et al. |
| 5946622 | August 31, 1999 | Bojeryd |
| 5949564 | September 7, 1999 | Wake |
| 5953670 | September 14, 1999 | Newson |
| 5959531 | September 28, 1999 | Gallagher, III et al. |
| 5960344 | September 28, 1999 | Mahany |
| 5969837 | October 19, 1999 | Farber et al. |
| 5983070 | November 9, 1999 | Georges et al. |
| 5987303 | November 16, 1999 | Dutta et al. |
| 6005884 | December 21, 1999 | Cook et al. |
| 6006069 | December 21, 1999 | Langston |
| 6006105 | December 21, 1999 | Rostoker et al. |
| 6011980 | January 4, 2000 | Nagano et al. |
| 6014546 | January 11, 2000 | Georges et al. |
| 6016426 | January 18, 2000 | Bodell |
| 6023625 | February 8, 2000 | Myers, Jr. |
| 6037898 | March 14, 2000 | Parish et al. |
| 6061161 | May 9, 2000 | Yang et al. |
| 6069721 | May 30, 2000 | Oh et al. |
| 6088381 | July 11, 2000 | Myers, Jr. |
| 6118767 | September 12, 2000 | Shen et al. |
| 6122529 | September 19, 2000 | Sabat, Jr. et al. |
| 6127917 | October 3, 2000 | Tuttle |
| 6128470 | October 3, 2000 | Naidu et al. |
| 6128477 | October 3, 2000 | Freed |
| 6148041 | November 14, 2000 | Dent |
| 6150921 | November 21, 2000 | Werb et al. |
| 6157810 | December 5, 2000 | Georges et al. |
| 6192216 | February 20, 2001 | Sabat, Jr. et al. |
| 6194968 | February 27, 2001 | Winslow |
| 6212397 | April 3, 2001 | Langston et al. |
| 6222503 | April 24, 2001 | Gietema |
| 6223201 | April 24, 2001 | Reznak |
| 6232870 | May 15, 2001 | Garber et al. |
| 6236789 | May 22, 2001 | Fitz |
| 6236863 | May 22, 2001 | Waldroup et al. |
| 6240274 | May 29, 2001 | Izadpanah |
| 6246500 | June 12, 2001 | Ackerman |
| 6268946 | July 31, 2001 | Larkin et al. |
| 6275990 | August 14, 2001 | Dapper et al. |
| 6279158 | August 21, 2001 | Geile et al. |
| 6286163 | September 11, 2001 | Trimble |
| 6292673 | September 18, 2001 | Maeda et al. |
| 6295451 | September 25, 2001 | Mimura |
| 6301240 | October 9, 2001 | Slabinski et al. |
| 6307869 | October 23, 2001 | Pawelski |
| 6314163 | November 6, 2001 | Acampora |
| 6317599 | November 13, 2001 | Rappaport et al. |
| 6323980 | November 27, 2001 | Bloom |
| 6324391 | November 27, 2001 | Bodell |
| 6330241 | December 11, 2001 | Fort |
| 6330244 | December 11, 2001 | Swartz et al. |
| 6334219 | December 25, 2001 | Hill et al. |
| 6336021 | January 1, 2002 | Nukada |
| 6336042 | January 1, 2002 | Dawson et al. |
| 6337754 | January 8, 2002 | Imajo |
| 6340932 | January 22, 2002 | Rodgers et al. |
| 6353406 | March 5, 2002 | Lanzl et al. |
| 6353600 | March 5, 2002 | Schwartz et al. |
| 6359714 | March 19, 2002 | Imajo |
| 6370203 | April 9, 2002 | Boesch et al. |
| 6374078 | April 16, 2002 | Williams et al. |
| 6374124 | April 16, 2002 | Slabinski |
| 6389010 | May 14, 2002 | Kubler et al. |
| 6400318 | June 4, 2002 | Kasami et al. |
| 6400418 | June 4, 2002 | Wakabayashi |
| 6404775 | June 11, 2002 | Leslie et al. |
| 6405018 | June 11, 2002 | Reudink et al. |
| 6405058 | June 11, 2002 | Bobier |
| 6405308 | June 11, 2002 | Gupta et al. |
| 6414624 | July 2, 2002 | Endo et al. |
| 6415132 | July 2, 2002 | Sabat, Jr. |
| 6421327 | July 16, 2002 | Lundby et al. |
| 6438301 | August 20, 2002 | Johnson et al. |
| 6438371 | August 20, 2002 | Fujise et al. |
| 6448558 | September 10, 2002 | Greene |
| 6452915 | September 17, 2002 | Jorgensen |
| 6459519 | October 1, 2002 | Sasai et al. |
| 6459989 | October 1, 2002 | Kirkpatrick et al. |
| 6477154 | November 5, 2002 | Cheong et al. |
| 6480702 | November 12, 2002 | Sabat, Jr. |
| 6486907 | November 26, 2002 | Farber et al. |
| 6496290 | December 17, 2002 | Lee |
| 6501965 | December 31, 2002 | Lucidarme |
| 6504636 | January 7, 2003 | Seto et al. |
| 6504831 | January 7, 2003 | Greenwood et al. |
| 6512478 | January 28, 2003 | Chien |
| 6519395 | February 11, 2003 | Bevan et al. |
| 6519449 | February 11, 2003 | Zhang et al. |
| 6525855 | February 25, 2003 | Westbrook et al. |
| 6535330 | March 18, 2003 | Lelic et al. |
| 6535720 | March 18, 2003 | Martin et al. |
| 6556551 | April 29, 2003 | Schwartz |
| 6577794 | June 10, 2003 | Currie et al. |
| 6577801 | June 10, 2003 | Broderick et al. |
| 6580402 | June 17, 2003 | Navarro et al. |
| 6580905 | June 17, 2003 | Naidu et al. |
| 6580918 | June 17, 2003 | Leickel et al. |
| 6583763 | June 24, 2003 | Judd |
| 6587514 | July 1, 2003 | Wright et al. |
| 6594496 | July 15, 2003 | Schwartz |
| 6597325 | July 22, 2003 | Judd et al. |
| 6598009 | July 22, 2003 | Yang |
| 6606430 | August 12, 2003 | Bartur et al. |
| 6615074 | September 2, 2003 | Mickle et al. |
| 6628732 | September 30, 2003 | Takaki |
| 6634811 | October 21, 2003 | Gertel et al. |
| 6636747 | October 21, 2003 | Harada et al. |
| 6640103 | October 28, 2003 | Inman et al. |
| 6643437 | November 4, 2003 | Park |
| 6652158 | November 25, 2003 | Bartur et al. |
| 6654590 | November 25, 2003 | Boros et al. |
| 6654616 | November 25, 2003 | Pope, Jr. et al. |
| 6657535 | December 2, 2003 | Magbie et al. |
| 6658269 | December 2, 2003 | Golemon et al. |
| 6665308 | December 16, 2003 | Rakib et al. |
| 6670930 | December 30, 2003 | Navarro |
| 6674966 | January 6, 2004 | Koonen |
| 6675294 | January 6, 2004 | Gupta et al. |
| 6678509 | January 13, 2004 | Skarman et al. |
| 6687437 | February 3, 2004 | Starnes et al. |
| 6690328 | February 10, 2004 | Judd |
| 6701137 | March 2, 2004 | Judd et al. |
| 6704298 | March 9, 2004 | Matsumiya et al. |
| 6704545 | March 9, 2004 | Wala |
| 6710366 | March 23, 2004 | Lee et al. |
| 6714800 | March 30, 2004 | Johnson et al. |
| 6731880 | May 4, 2004 | Westbrook et al. |
| 6745013 | June 1, 2004 | Porter et al. |
| 6758913 | July 6, 2004 | Tunney et al. |
| 6763226 | July 13, 2004 | McZeal, Jr. |
| 6771862 | August 3, 2004 | Karnik et al. |
| 6771933 | August 3, 2004 | Eng et al. |
| 6784802 | August 31, 2004 | Stanescu |
| 6785558 | August 31, 2004 | Stratford et al. |
| 6788666 | September 7, 2004 | Linebarger et al. |
| 6801767 | October 5, 2004 | Schwartz et al. |
| 6807374 | October 19, 2004 | Imajo et al. |
| 6812824 | November 2, 2004 | Goldinger et al. |
| 6812905 | November 2, 2004 | Thomas et al. |
| 6823174 | November 23, 2004 | Masenten et al. |
| 6826163 | November 30, 2004 | Mani et al. |
| 6826164 | November 30, 2004 | Mani et al. |
| 6826337 | November 30, 2004 | Linnell |
| 6836660 | December 28, 2004 | Wala |
| 6836673 | December 28, 2004 | Trott |
| 6842433 | January 11, 2005 | West et al. |
| 6847856 | January 25, 2005 | Bohannon |
| 6850510 | February 1, 2005 | Kubler |
| 6865390 | March 8, 2005 | Goss et al. |
| 6873823 | March 29, 2005 | Hasarchi et al. |
| 6876056 | April 5, 2005 | Tilmans et al. |
| 6879290 | April 12, 2005 | Toutain et al. |
| 6882311 | April 19, 2005 | Walker et al. |
| 6883710 | April 26, 2005 | Chung |
| 6885344 | April 26, 2005 | Mohamadi |
| 6885846 | April 26, 2005 | Panasik et al. |
| 6889060 | May 3, 2005 | Fernando et al. |
| 6909399 | June 21, 2005 | Zegelin et al. |
| 6915058 | July 5, 2005 | Pons |
| 6915529 | July 5, 2005 | Suematsu et al. |
| 6919858 | July 19, 2005 | Rofougaran |
| 6920330 | July 19, 2005 | Caronni et al. |
| 6924997 | August 2, 2005 | Chen et al. |
| 6930987 | August 16, 2005 | Fukuda et al. |
| 6931183 | August 16, 2005 | Panak et al. |
| 6931659 | August 16, 2005 | Kinemura |
| 6933849 | August 23, 2005 | Sawyer |
| 6934511 | August 23, 2005 | Lovinggood et al. |
| 6934541 | August 23, 2005 | Miyatani |
| 6941112 | September 6, 2005 | Hasegawa |
| 6946989 | September 20, 2005 | Vavik |
| 6961312 | November 1, 2005 | Kubler et al. |
| 6963289 | November 8, 2005 | Aljadeff et al. |
| 6963552 | November 8, 2005 | Sabat, Jr. et al. |
| 6965718 | November 15, 2005 | Koertel |
| 6967347 | November 22, 2005 | Estes et al. |
| 6968107 | November 22, 2005 | Belardi et al. |
| 6970652 | November 29, 2005 | Zhang et al. |
| 6973243 | December 6, 2005 | Koyasu et al. |
| 6974262 | December 13, 2005 | Rickenbach |
| 6977502 | December 20, 2005 | Hertz |
| 7002511 | February 21, 2006 | Ammar et al. |
| 7006465 | February 28, 2006 | Toshimitsu et al. |
| 7013087 | March 14, 2006 | Suzuki et al. |
| 7015826 | March 21, 2006 | Chan et al. |
| 7020473 | March 28, 2006 | Splett |
| 7020488 | March 28, 2006 | Bleile et al. |
| 7024166 | April 4, 2006 | Wallace |
| 7035512 | April 25, 2006 | Van Bijsterveld |
| 7035671 | April 25, 2006 | Solum |
| 7039399 | May 2, 2006 | Fischer |
| 7043271 | May 9, 2006 | Seto et al. |
| 7047028 | May 16, 2006 | Cagenius et al. |
| 7050017 | May 23, 2006 | King et al. |
| 7053838 | May 30, 2006 | Judd |
| 7054513 | May 30, 2006 | Herz et al. |
| 7069577 | June 27, 2006 | Geile et al. |
| 7072586 | July 4, 2006 | Aburakawa et al. |
| 7082320 | July 25, 2006 | Kattukaran et al. |
| 7084769 | August 1, 2006 | Bauer et al. |
| 7093985 | August 22, 2006 | Lord et al. |
| 7103119 | September 5, 2006 | Matsuoka et al. |
| 7103377 | September 5, 2006 | Bauman et al. |
| 7106252 | September 12, 2006 | Smith et al. |
| 7106931 | September 12, 2006 | Sutehall et al. |
| 7110795 | September 19, 2006 | Doi |
| 7114859 | October 3, 2006 | Tuohimaa et al. |
| 7127175 | October 24, 2006 | Mani et al. |
| 7127176 | October 24, 2006 | Sasaki |
| 7142503 | November 28, 2006 | Grant et al. |
| 7142535 | November 28, 2006 | Kubler et al. |
| 7142619 | November 28, 2006 | Sommer et al. |
| 7146506 | December 5, 2006 | Hannah et al. |
| 7160032 | January 9, 2007 | Nagashima et al. |
| 7171244 | January 30, 2007 | Bauman |
| 7184728 | February 27, 2007 | Solum |
| 7190748 | March 13, 2007 | Kim et al. |
| 7194023 | March 20, 2007 | Norrell et al. |
| 7199443 | April 3, 2007 | Elsharawy |
| 7200305 | April 3, 2007 | Dion et al. |
| 7200391 | April 3, 2007 | Chung et al. |
| 7228072 | June 5, 2007 | Mickelsson et al. |
| 7263293 | August 28, 2007 | Ommodt et al. |
| 7269311 | September 11, 2007 | Kim et al. |
| 7280011 | October 9, 2007 | Bayar et al. |
| 7286843 | October 23, 2007 | Scheck |
| 7286854 | October 23, 2007 | Ferrato et al. |
| 7295119 | November 13, 2007 | Rappaport et al. |
| 7310430 | December 18, 2007 | Mallya et al. |
| 7313415 | December 25, 2007 | Wake et al. |
| 7315735 | January 1, 2008 | Graham |
| 7324730 | January 29, 2008 | Varkey et al. |
| 7343164 | March 11, 2008 | Kallstenius |
| 7348843 | March 25, 2008 | Qiu et al. |
| 7349633 | March 25, 2008 | Lee et al. |
| 7359408 | April 15, 2008 | Kim |
| 7359674 | April 15, 2008 | Markki et al. |
| 7366150 | April 29, 2008 | Lee et al. |
| 7366151 | April 29, 2008 | Kubler et al. |
| 7369526 | May 6, 2008 | Lechleider et al. |
| 7379669 | May 27, 2008 | Kim |
| 7388892 | June 17, 2008 | Nishiyama et al. |
| 7392025 | June 24, 2008 | Rooyen et al. |
| 7392029 | June 24, 2008 | Pronkine |
| 7394883 | July 1, 2008 | Funakubo et al. |
| 7403156 | July 22, 2008 | Coppi et al. |
| 7409159 | August 5, 2008 | Izadpanah |
| 7412224 | August 12, 2008 | Kotola et al. |
| 7424228 | September 9, 2008 | Williams et al. |
| 7444051 | October 28, 2008 | Tatat et al. |
| 7450853 | November 11, 2008 | Kim et al. |
| 7450854 | November 11, 2008 | Lee et al. |
| 7451365 | November 11, 2008 | Wang et al. |
| 7454222 | November 18, 2008 | Huang et al. |
| 7460507 | December 2, 2008 | Kubler et al. |
| 7460829 | December 2, 2008 | Utsumi et al. |
| 7460831 | December 2, 2008 | Hasarchi |
| 7466925 | December 16, 2008 | Iannelli |
| 7469105 | December 23, 2008 | Wake et al. |
| 7477597 | January 13, 2009 | Segel |
| 7483504 | January 27, 2009 | Shapira et al. |
| 7483711 | January 27, 2009 | Burchfiel |
| 7496070 | February 24, 2009 | Vesuna |
| 7496384 | February 24, 2009 | Seto et al. |
| 7505747 | March 17, 2009 | Solum |
| 7512419 | March 31, 2009 | Solum |
| 7522552 | April 21, 2009 | Fein et al. |
| 7539509 | May 26, 2009 | Bauman et al. |
| 7542452 | June 2, 2009 | Penumetsa |
| 7546138 | June 9, 2009 | Bauman |
| 7548138 | June 16, 2009 | Kamgaing |
| 7548695 | June 16, 2009 | Wake |
| 7551641 | June 23, 2009 | Pirzada et al. |
| 7557758 | July 7, 2009 | Rofougaran |
| 7580384 | August 25, 2009 | Kubler et al. |
| 7586861 | September 8, 2009 | Kubler et al. |
| 7590354 | September 15, 2009 | Sauer et al. |
| 7593704 | September 22, 2009 | Pinel et al. |
| 7599420 | October 6, 2009 | Forenza et al. |
| 7599672 | October 6, 2009 | Shoji et al. |
| 7610046 | October 27, 2009 | Wala |
| 7630690 | December 8, 2009 | Kaewell, Jr. et al. |
| 7633934 | December 15, 2009 | Kubler et al. |
| 7639982 | December 29, 2009 | Wala |
| 7646743 | January 12, 2010 | Kubler et al. |
| 7646777 | January 12, 2010 | Hicks, III et al. |
| 7653397 | January 26, 2010 | Pernu et al. |
| 7668565 | February 23, 2010 | Ylänen et al. |
| 7675936 | March 9, 2010 | Mizutani et al. |
| 7688811 | March 30, 2010 | Kubler et al. |
| 7693486 | April 6, 2010 | Kasslin et al. |
| 7697467 | April 13, 2010 | Kubler et al. |
| 7697574 | April 13, 2010 | Suematsu et al. |
| 7715375 | May 11, 2010 | Kubler et al. |
| 7720510 | May 18, 2010 | Pescod et al. |
| 7751374 | July 6, 2010 | Donovan |
| 7751838 | July 6, 2010 | Ramesh et al. |
| 7760703 | July 20, 2010 | Kubler et al. |
| 7761093 | July 20, 2010 | Sabat, Jr. et al. |
| 7768951 | August 3, 2010 | Kubler et al. |
| 7773573 | August 10, 2010 | Chung et al. |
| 7778603 | August 17, 2010 | Palin et al. |
| 7787823 | August 31, 2010 | George et al. |
| 7805073 | September 28, 2010 | Sabat, Jr. et al. |
| 7809012 | October 5, 2010 | Ruuska et al. |
| 7812766 | October 12, 2010 | Leblanc et al. |
| 7812775 | October 12, 2010 | Babakhani et al. |
| 7817969 | October 19, 2010 | Castaneda et al. |
| 7835328 | November 16, 2010 | Stephens et al. |
| 7848316 | December 7, 2010 | Kubler et al. |
| 7848770 | December 7, 2010 | Scheinert |
| 7853234 | December 14, 2010 | Afsahi |
| 7870321 | January 11, 2011 | Rofougaran |
| 7880677 | February 1, 2011 | Rofougaran et al. |
| 7881755 | February 1, 2011 | Mishra et al. |
| 7894423 | February 22, 2011 | Kubler et al. |
| 7899007 | March 1, 2011 | Kubler et al. |
| 7907972 | March 15, 2011 | Walton et al. |
| 7912043 | March 22, 2011 | Kubler et al. |
| 7912506 | March 22, 2011 | Lovberg et al. |
| 7916706 | March 29, 2011 | Kubler et al. |
| 7917177 | March 29, 2011 | Bauman |
| 7920553 | April 5, 2011 | Kubler et al. |
| 7920858 | April 5, 2011 | Sabat, Jr. et al. |
| 7924783 | April 12, 2011 | Mahany et al. |
| 7936713 | May 3, 2011 | Kubler et al. |
| 7949364 | May 24, 2011 | Kasslin et al. |
| 7957777 | June 7, 2011 | Vu et al. |
| 7962111 | June 14, 2011 | Solum |
| 7969009 | June 28, 2011 | Chandrasekaran |
| 7969911 | June 28, 2011 | Mahany et al. |
| 7990925 | August 2, 2011 | Tinnakornsrisuphap et al. |
| 7996020 | August 9, 2011 | Chhabra |
| 8018907 | September 13, 2011 | Kubler et al. |
| 8023886 | September 20, 2011 | Rofougaran |
| 8027656 | September 27, 2011 | Rofougaran et al. |
| 8036308 | October 11, 2011 | Rofougaran |
| 8082353 | December 20, 2011 | Huber et al. |
| 8086192 | December 27, 2011 | Rofougaran et al. |
| 8135102 | March 13, 2012 | Wiwel et al. |
| 8213401 | July 3, 2012 | Fischer et al. |
| 8223795 | July 17, 2012 | Cox et al. |
| 8238463 | August 7, 2012 | Arslan et al. |
| 8270387 | September 18, 2012 | Cannon et al. |
| 8290483 | October 16, 2012 | Sabat, Jr. et al. |
| 8306563 | November 6, 2012 | Zavadsky et al. |
| 8346278 | January 1, 2013 | Wala et al. |
| 8428201 | April 23, 2013 | Mchann, Jr. et al. |
| 8428510 | April 23, 2013 | Stratford et al. |
| 8462683 | June 11, 2013 | Uyehara et al. |
| 8472579 | June 25, 2013 | Uyehara et al. |
| 8509215 | August 13, 2013 | Stuart |
| 8509850 | August 13, 2013 | Zavadsky et al. |
| 8526970 | September 3, 2013 | Wala et al. |
| 8532242 | September 10, 2013 | Fischer et al. |
| 8626245 | January 7, 2014 | Zavadsky et al. |
| 8634766 | January 21, 2014 | Hobbs et al. |
| 8737454 | May 27, 2014 | Wala et al. |
| 8743718 | June 3, 2014 | Grenier et al. |
| 8743756 | June 3, 2014 | Uyehara et al. |
| 8837659 | September 16, 2014 | Uyehara et al. |
| 8837940 | September 16, 2014 | Smith et al. |
| 8873585 | October 28, 2014 | Oren et al. |
| 8909133 | December 9, 2014 | Hobbs et al. |
| 8929288 | January 6, 2015 | Stewart et al. |
| 20010036163 | November 1, 2001 | Sabat, Jr. et al. |
| 20010036199 | November 1, 2001 | Terry |
| 20020003645 | January 10, 2002 | Kim et al. |
| 20020009070 | January 24, 2002 | Lindsay et al. |
| 20020012336 | January 31, 2002 | Hughes et al. |
| 20020012495 | January 31, 2002 | Sasai et al. |
| 20020016827 | February 7, 2002 | McCabe et al. |
| 20020045519 | April 18, 2002 | Watterson et al. |
| 20020048071 | April 25, 2002 | Suzuki et al. |
| 20020051434 | May 2, 2002 | Ozluturk et al. |
| 20020075906 | June 20, 2002 | Cole et al. |
| 20020092347 | July 18, 2002 | Niekerk et al. |
| 20020097564 | July 25, 2002 | Struhsaker et al. |
| 20020103012 | August 1, 2002 | Kim et al. |
| 20020111149 | August 15, 2002 | Shoki |
| 20020111192 | August 15, 2002 | Thomas et al. |
| 20020114038 | August 22, 2002 | Arnon et al. |
| 20020123365 | September 5, 2002 | Thorson et al. |
| 20020126967 | September 12, 2002 | Panak et al. |
| 20020128009 | September 12, 2002 | Boch et al. |
| 20020130778 | September 19, 2002 | Nicholson |
| 20020181668 | December 5, 2002 | Masoian et al. |
| 20020190845 | December 19, 2002 | Moore |
| 20020197984 | December 26, 2002 | Monin et al. |
| 20030002604 | January 2, 2003 | Fifield et al. |
| 20030007214 | January 9, 2003 | Aburakawa et al. |
| 20030016418 | January 23, 2003 | Westbrook et al. |
| 20030045284 | March 6, 2003 | Copley et al. |
| 20030069922 | April 10, 2003 | Arunachalam |
| 20030078074 | April 24, 2003 | Sesay et al. |
| 20030112826 | June 19, 2003 | Ashwood Smith et al. |
| 20030141962 | July 31, 2003 | Barink |
| 20030161637 | August 28, 2003 | Yamamoto et al. |
| 20030165287 | September 4, 2003 | Krill et al. |
| 20030174099 | September 18, 2003 | Bauer et al. |
| 20030209601 | November 13, 2003 | Chung |
| 20040001719 | January 1, 2004 | Sasaki |
| 20040008114 | January 15, 2004 | Sawyer |
| 20040017785 | January 29, 2004 | Zelst |
| 20040037565 | February 26, 2004 | Young et al. |
| 20040041714 | March 4, 2004 | Forster |
| 20040043764 | March 4, 2004 | Bigham et al. |
| 20040047313 | March 11, 2004 | Rumpf et al. |
| 20040078151 | April 22, 2004 | Aljadeff et al. |
| 20040095907 | May 20, 2004 | Agee et al. |
| 20040100930 | May 27, 2004 | Shapira et al. |
| 20040106435 | June 3, 2004 | Bauman et al. |
| 20040126068 | July 1, 2004 | Van Bijsterveld |
| 20040126107 | July 1, 2004 | Jay et al. |
| 20040139477 | July 15, 2004 | Russell et al. |
| 20040146020 | July 29, 2004 | Kubler et al. |
| 20040149736 | August 5, 2004 | Clothier |
| 20040151164 | August 5, 2004 | Kubler et al. |
| 20040151503 | August 5, 2004 | Kashima et al. |
| 20040157623 | August 12, 2004 | Splett |
| 20040160912 | August 19, 2004 | Kubler et al. |
| 20040160913 | August 19, 2004 | Kubler et al. |
| 20040162084 | August 19, 2004 | Wang |
| 20040162115 | August 19, 2004 | Smith et al. |
| 20040162116 | August 19, 2004 | Han et al. |
| 20040165573 | August 26, 2004 | Kubler et al. |
| 20040175173 | September 9, 2004 | Deas |
| 20040196404 | October 7, 2004 | Loheit et al. |
| 20040202257 | October 14, 2004 | Mehta et al. |
| 20040203703 | October 14, 2004 | Fischer |
| 20040203704 | October 14, 2004 | Ommodt et al. |
| 20040203846 | October 14, 2004 | Caronni et al. |
| 20040204109 | October 14, 2004 | Hoppenstein |
| 20040208526 | October 21, 2004 | Mibu |
| 20040208643 | October 21, 2004 | Roberts et al. |
| 20040215723 | October 28, 2004 | Chadha |
| 20040218873 | November 4, 2004 | Nagashima et al. |
| 20040233877 | November 25, 2004 | Lee et al. |
| 20040258105 | December 23, 2004 | Spathas et al. |
| 20040267971 | December 30, 2004 | Seshadri |
| 20050052287 | March 10, 2005 | Whitesmith et al. |
| 20050058451 | March 17, 2005 | Ross |
| 20050068179 | March 31, 2005 | Roesner |
| 20050076982 | April 14, 2005 | Metcalf et al. |
| 20050078006 | April 14, 2005 | Hutchins et al. |
| 20050093679 | May 5, 2005 | Zai et al. |
| 20050099343 | May 12, 2005 | Asrani et al. |
| 20050116821 | June 2, 2005 | Wilsey et al. |
| 20050123232 | June 9, 2005 | Piede et al. |
| 20050141545 | June 30, 2005 | Fein et al. |
| 20050143077 | June 30, 2005 | Charbonneau |
| 20050147067 | July 7, 2005 | Mani et al. |
| 20050147071 | July 7, 2005 | Karaoguz et al. |
| 20050148306 | July 7, 2005 | Hiddink |
| 20050159108 | July 21, 2005 | Fletcher et al. |
| 20050174236 | August 11, 2005 | Brookner |
| 20050176458 | August 11, 2005 | Shklarsky et al. |
| 20050201323 | September 15, 2005 | Mani et al. |
| 20050201761 | September 15, 2005 | Bartur et al. |
| 20050219050 | October 6, 2005 | Martin |
| 20050224585 | October 13, 2005 | Durrant et al. |
| 20050226625 | October 13, 2005 | Wake et al. |
| 20050232636 | October 20, 2005 | Durrant et al. |
| 20050242188 | November 3, 2005 | Vesuna |
| 20050252971 | November 17, 2005 | Howarth et al. |
| 20050266797 | December 1, 2005 | Utsumi et al. |
| 20050266854 | December 1, 2005 | Niiho et al. |
| 20050269930 | December 8, 2005 | Shimizu et al. |
| 20050271396 | December 8, 2005 | Iannelli |
| 20050272439 | December 8, 2005 | Picciriello et al. |
| 20060002326 | January 5, 2006 | Vesuna |
| 20060014548 | January 19, 2006 | Bolin |
| 20060017633 | January 26, 2006 | Pronkine |
| 20060028352 | February 9, 2006 | McNamara et al. |
| 20060045054 | March 2, 2006 | Utsumi et al. |
| 20060045524 | March 2, 2006 | Lee et al. |
| 20060045525 | March 2, 2006 | Lee et al. |
| 20060053324 | March 9, 2006 | Giat et al. |
| 20060056327 | March 16, 2006 | Coersmeier |
| 20060062579 | March 23, 2006 | Kim et al. |
| 20060083520 | April 20, 2006 | Healey et al. |
| 20060094470 | May 4, 2006 | Wake et al. |
| 20060104643 | May 18, 2006 | Lee et al. |
| 20060159388 | July 20, 2006 | Kawase et al. |
| 20060172775 | August 3, 2006 | Conyers et al. |
| 20060182446 | August 17, 2006 | Kim et al. |
| 20060182449 | August 17, 2006 | Iannelli et al. |
| 20060189354 | August 24, 2006 | Lee et al. |
| 20060209745 | September 21, 2006 | MacMullan et al. |
| 20060223439 | October 5, 2006 | Pinel et al. |
| 20060233506 | October 19, 2006 | Noonan et al. |
| 20060239630 | October 26, 2006 | Hase et al. |
| 20060268738 | November 30, 2006 | Goerke et al. |
| 20060274704 | December 7, 2006 | Desai et al. |
| 20070009266 | January 11, 2007 | Bothwell |
| 20070050451 | March 1, 2007 | Caspi et al. |
| 20070054682 | March 8, 2007 | Fanning et al. |
| 20070058978 | March 15, 2007 | Lee et al. |
| 20070060045 | March 15, 2007 | Prautzsch |
| 20070060055 | March 15, 2007 | Desai et al. |
| 20070071128 | March 29, 2007 | Meir et al. |
| 20070076649 | April 5, 2007 | Lin et al. |
| 20070093273 | April 26, 2007 | Cai |
| 20070149250 | June 28, 2007 | Crozzoli et al. |
| 20070166042 | July 19, 2007 | Seeds et al. |
| 20070173288 | July 26, 2007 | Skarby et al. |
| 20070174889 | July 26, 2007 | Kim et al. |
| 20070224954 | September 27, 2007 | Gopi |
| 20070230328 | October 4, 2007 | Saitou |
| 20070243899 | October 18, 2007 | Hermel et al. |
| 20070248358 | October 25, 2007 | Sauer |
| 20070253714 | November 1, 2007 | Seeds et al. |
| 20070257796 | November 8, 2007 | Easton et al. |
| 20070264009 | November 15, 2007 | Sabat, Jr. et al. |
| 20070264011 | November 15, 2007 | Sone et al. |
| 20070268846 | November 22, 2007 | Proctor et al. |
| 20070274279 | November 29, 2007 | Wood et al. |
| 20070292143 | December 20, 2007 | Yu et al. |
| 20070297005 | December 27, 2007 | Montierth et al. |
| 20080002652 | January 3, 2008 | Gupta et al. |
| 20080007453 | January 10, 2008 | Vassilakis et al. |
| 20080013909 | January 17, 2008 | Kostet et al. |
| 20080013956 | January 17, 2008 | Ware et al. |
| 20080013957 | January 17, 2008 | Akers et al. |
| 20080014948 | January 17, 2008 | Scheinert |
| 20080026765 | January 31, 2008 | Charbonneau |
| 20080031628 | February 7, 2008 | Dragas et al. |
| 20080043714 | February 21, 2008 | Pernu |
| 20080056167 | March 6, 2008 | Kim et al. |
| 20080058018 | March 6, 2008 | Scheinert |
| 20080063397 | March 13, 2008 | Hu et al. |
| 20080070502 | March 20, 2008 | George et al. |
| 20080080863 | April 3, 2008 | Sauer et al. |
| 20080098203 | April 24, 2008 | Master et al. |
| 20080118014 | May 22, 2008 | Reunamaki et al. |
| 20080119198 | May 22, 2008 | Hettstedt et al. |
| 20080124086 | May 29, 2008 | Matthews |
| 20080124087 | May 29, 2008 | Hartmann et al. |
| 20080129634 | June 5, 2008 | Pera et al. |
| 20080134194 | June 5, 2008 | Liu |
| 20080145061 | June 19, 2008 | Lee et al. |
| 20080150514 | June 26, 2008 | Codreanu et al. |
| 20080166094 | July 10, 2008 | Bookbinder et al. |
| 20080194226 | August 14, 2008 | Rivas et al. |
| 20080207253 | August 28, 2008 | Jaakkola et al. |
| 20080212969 | September 4, 2008 | Fasshauer et al. |
| 20080219670 | September 11, 2008 | Kim et al. |
| 20080232305 | September 25, 2008 | Oren et al. |
| 20080232799 | September 25, 2008 | Kim |
| 20080247716 | October 9, 2008 | Thomas |
| 20080253280 | October 16, 2008 | Tang et al. |
| 20080253351 | October 16, 2008 | Pernu et al. |
| 20080253773 | October 16, 2008 | Zheng |
| 20080260388 | October 23, 2008 | Kim et al. |
| 20080261656 | October 23, 2008 | Bella et al. |
| 20080268766 | October 30, 2008 | Narkmon et al. |
| 20080268833 | October 30, 2008 | Huang et al. |
| 20080273844 | November 6, 2008 | Kewitsch |
| 20080279137 | November 13, 2008 | Pernu et al. |
| 20080280569 | November 13, 2008 | Hazani et al. |
| 20080291830 | November 27, 2008 | Pernu et al. |
| 20080292322 | November 27, 2008 | Daghighian et al. |
| 20080298813 | December 4, 2008 | Song et al. |
| 20080304831 | December 11, 2008 | Miller, II et al. |
| 20080310464 | December 18, 2008 | Schneider |
| 20080310848 | December 18, 2008 | Yasuda et al. |
| 20080311876 | December 18, 2008 | Leenaerts et al. |
| 20080311944 | December 18, 2008 | Hansen et al. |
| 20090022304 | January 22, 2009 | Kubler et al. |
| 20090028087 | January 29, 2009 | Nguyen et al. |
| 20090028317 | January 29, 2009 | Ling et al. |
| 20090041413 | February 12, 2009 | Hurley |
| 20090047023 | February 19, 2009 | Pescod et al. |
| 20090059903 | March 5, 2009 | Kubler et al. |
| 20090061796 | March 5, 2009 | Arkko et al. |
| 20090061939 | March 5, 2009 | Andersson et al. |
| 20090067402 | March 12, 2009 | Forenza et al. |
| 20090073916 | March 19, 2009 | Zhang et al. |
| 20090081985 | March 26, 2009 | Rofougaran et al. |
| 20090087179 | April 2, 2009 | Underwood et al. |
| 20090088071 | April 2, 2009 | Rofougaran |
| 20090088072 | April 2, 2009 | Rofougaran et al. |
| 20090135078 | May 28, 2009 | Lindmark et al. |
| 20090141780 | June 4, 2009 | Cruz-Albrecht et al. |
| 20090149221 | June 11, 2009 | Liu et al. |
| 20090154621 | June 18, 2009 | Shapira et al. |
| 20090169163 | July 2, 2009 | Abbott, III et al. |
| 20090175214 | July 9, 2009 | Sfar et al. |
| 20090180407 | July 16, 2009 | Sabat et al. |
| 20090180426 | July 16, 2009 | Sabat et al. |
| 20090218407 | September 3, 2009 | Rofougaran |
| 20090218657 | September 3, 2009 | Rofougaran |
| 20090237317 | September 24, 2009 | Rofougaran |
| 20090245084 | October 1, 2009 | Moffatt et al. |
| 20090245153 | October 1, 2009 | Li et al. |
| 20090245221 | October 1, 2009 | Piipponen |
| 20090247109 | October 1, 2009 | Rofougaran |
| 20090252136 | October 8, 2009 | Mahany et al. |
| 20090252139 | October 8, 2009 | Ludovico et al. |
| 20090252205 | October 8, 2009 | Rheinfelder et al. |
| 20090258652 | October 15, 2009 | Lambert et al. |
| 20090278596 | November 12, 2009 | Rofougaran et al. |
| 20090279593 | November 12, 2009 | Rofougaran et al. |
| 20090285147 | November 19, 2009 | Subasic et al. |
| 20090316608 | December 24, 2009 | Singh et al. |
| 20090319909 | December 24, 2009 | Hsueh et al. |
| 20100002626 | January 7, 2010 | Schmidt et al. |
| 20100002661 | January 7, 2010 | Schmidt et al. |
| 20100002662 | January 7, 2010 | Schmidt et al. |
| 20100014494 | January 21, 2010 | Schmidt et al. |
| 20100027443 | February 4, 2010 | LoGalbo et al. |
| 20100056200 | March 4, 2010 | Tolonen |
| 20100080154 | April 1, 2010 | Noh et al. |
| 20100080182 | April 1, 2010 | Kubler et al. |
| 20100091475 | April 15, 2010 | Toms et al. |
| 20100118864 | May 13, 2010 | Kubler et al. |
| 20100127937 | May 27, 2010 | Chandrasekaran et al. |
| 20100134257 | June 3, 2010 | Puleston et al. |
| 20100142598 | June 10, 2010 | Murray et al. |
| 20100142955 | June 10, 2010 | Yu et al. |
| 20100144285 | June 10, 2010 | Behzad et al. |
| 20100148373 | June 17, 2010 | Chandrasekaran |
| 20100156721 | June 24, 2010 | Alamouti et al. |
| 20100159859 | June 24, 2010 | Rofougaran |
| 20100188998 | July 29, 2010 | Pernu et al. |
| 20100189439 | July 29, 2010 | Novak et al. |
| 20100190509 | July 29, 2010 | Davis |
| 20100202326 | August 12, 2010 | Rofougaran et al. |
| 20100225413 | September 9, 2010 | Rofougaran et al. |
| 20100225520 | September 9, 2010 | Mohamadi et al. |
| 20100225556 | September 9, 2010 | Rofougaran et al. |
| 20100225557 | September 9, 2010 | Rofougaran et al. |
| 20100232323 | September 16, 2010 | Kubler et al. |
| 20100246558 | September 30, 2010 | Harel |
| 20100255774 | October 7, 2010 | Kenington |
| 20100258949 | October 14, 2010 | Henderson et al. |
| 20100260063 | October 14, 2010 | Kubler et al. |
| 20100261501 | October 14, 2010 | Behzad et al. |
| 20100266287 | October 21, 2010 | Adhikari et al. |
| 20100278530 | November 4, 2010 | Kummetz et al. |
| 20100284323 | November 11, 2010 | Tang et al. |
| 20100290355 | November 18, 2010 | Roy et al. |
| 20100309049 | December 9, 2010 | Reunamäki et al. |
| 20100311472 | December 9, 2010 | Rofougaran et al. |
| 20100311480 | December 9, 2010 | Raines et al. |
| 20100329161 | December 30, 2010 | Ylanen et al. |
| 20100329166 | December 30, 2010 | Mahany et al. |
| 20100329680 | December 30, 2010 | Presi et al. |
| 20110002687 | January 6, 2011 | Sabat, Jr. et al. |
| 20110007724 | January 13, 2011 | Mahany et al. |
| 20110007733 | January 13, 2011 | Kubler et al. |
| 20110008042 | January 13, 2011 | Stewart |
| 20110019999 | January 27, 2011 | George et al. |
| 20110021146 | January 27, 2011 | Pernu |
| 20110021224 | January 27, 2011 | Koskinen et al. |
| 20110026932 | February 3, 2011 | Yeh et al. |
| 20110045767 | February 24, 2011 | Rofougaran et al. |
| 20110065450 | March 17, 2011 | Kazmi |
| 20110066774 | March 17, 2011 | Rofougaran |
| 20110069668 | March 24, 2011 | Chion et al. |
| 20110071734 | March 24, 2011 | Van Wiemeersch et al. |
| 20110086614 | April 14, 2011 | Brisebois et al. |
| 20110116393 | May 19, 2011 | Hong et al. |
| 20110116572 | May 19, 2011 | Lee et al. |
| 20110122912 | May 26, 2011 | Benjamin et al. |
| 20110126071 | May 26, 2011 | Han et al. |
| 20110149879 | June 23, 2011 | Noriega et al. |
| 20110158298 | June 30, 2011 | Djadi et al. |
| 20110182230 | July 28, 2011 | Ohm et al. |
| 20110194475 | August 11, 2011 | Kim et al. |
| 20110200328 | August 18, 2011 | In De Betou et al. |
| 20110201368 | August 18, 2011 | Faccin et al. |
| 20110204504 | August 25, 2011 | Henderson et al. |
| 20110206383 | August 25, 2011 | Chien et al. |
| 20110211439 | September 1, 2011 | Manpuria et al. |
| 20110215901 | September 8, 2011 | Van Wiemeersch et al. |
| 20110222415 | September 15, 2011 | Ramamurthi et al. |
| 20110222434 | September 15, 2011 | Chen |
| 20110222619 | September 15, 2011 | Ramamurthi et al. |
| 20110227795 | September 22, 2011 | Lopez et al. |
| 20110244887 | October 6, 2011 | Dupray et al. |
| 20110256878 | October 20, 2011 | Zhu et al. |
| 20110268033 | November 3, 2011 | Boldi et al. |
| 20110274021 | November 10, 2011 | He et al. |
| 20110281536 | November 17, 2011 | Lee et al. |
| 20120052892 | March 1, 2012 | Braithwaite |
| 20120177026 | July 12, 2012 | Uyehara et al. |
| 20130012195 | January 10, 2013 | Sabat, Jr. et al. |
| 20130070816 | March 21, 2013 | Aoki et al. |
| 20130071112 | March 21, 2013 | Melester et al. |
| 20130089332 | April 11, 2013 | Sauer et al. |
| 20130095870 | April 18, 2013 | Phillips et al. |
| 20130210490 | August 15, 2013 | Fischer et al. |
| 20130252651 | September 26, 2013 | Zavadsky et al. |
| 20130260705 | October 3, 2013 | Stratford |
| 20130273854 | October 17, 2013 | Zhang et al. |
| 20140016583 | January 16, 2014 | Smith |
| 20140072064 | March 13, 2014 | Lemson et al. |
| 20140140225 | May 22, 2014 | Wala |
| 20140146797 | May 29, 2014 | Zavadsky et al. |
| 20140146905 | May 29, 2014 | Zavadsky et al. |
| 20140146906 | May 29, 2014 | Zavadsky et al. |
| 20140219140 | August 7, 2014 | Uyehara et al. |
| 20150016441 | January 15, 2015 | Hanson et al. |
| 645192 | October 1992 | AU |
| 731180 | March 1998 | AU |
| 2065090 | February 1998 | CA |
| 2242707 | January 1999 | CA |
| 101389148 | March 2009 | CN |
| 101547447 | September 2009 | CN |
| 20104862 | August 2001 | DE |
| 10249414 | May 2004 | DE |
| 0477952 | April 1992 | EP |
| 0477952 | April 1992 | EP |
| 0461583 | March 1997 | EP |
| 851618 | July 1998 | EP |
| 0687400 | November 1998 | EP |
| 0993124 | April 2000 | EP |
| 1037411 | September 2000 | EP |
| 1179895 | February 2002 | EP |
| 1267447 | December 2002 | EP |
| 1347584 | September 2003 | EP |
| 1363352 | November 2003 | EP |
| 1391897 | February 2004 | EP |
| 1443687 | August 2004 | EP |
| 1455550 | September 2004 | EP |
| 1501206 | January 2005 | EP |
| 1503451 | February 2005 | EP |
| 1530316 | May 2005 | EP |
| 1511203 | March 2006 | EP |
| 1267447 | August 2006 | EP |
| 1693974 | August 2006 | EP |
| 1742388 | January 2007 | EP |
| 1227605 | January 2008 | EP |
| 1954019 | August 2008 | EP |
| 1968250 | September 2008 | EP |
| 1056226 | April 2009 | EP |
| 1357683 | May 2009 | EP |
| 2081334 | July 2009 | EP |
| 2276298 | January 2011 | EP |
| 1570626 | November 2013 | EP |
| 2323252 | September 1998 | GB |
| 2370170 | June 2002 | GB |
| 2399963 | September 2004 | GB |
| 2428149 | January 2007 | GB |
| H4189036 | July 1992 | JP |
| 05260018 | October 1993 | JP |
| 09083450 | March 1997 | JP |
| 09162810 | June 1997 | JP |
| 09200840 | July 1997 | JP |
| 11068675 | March 1999 | JP |
| 2000152300 | May 2000 | JP |
| 2000341744 | December 2000 | JP |
| 2002264617 | September 2002 | JP |
| 2002353813 | December 2002 | JP |
| 2003148653 | May 2003 | JP |
| 2003172827 | June 2003 | JP |
| 2004172734 | June 2004 | JP |
| 2004245963 | September 2004 | JP |
| 2004247090 | September 2004 | JP |
| 2004264901 | September 2004 | JP |
| 2004265624 | September 2004 | JP |
| 2004317737 | November 2004 | JP |
| 2004349184 | December 2004 | JP |
| 2005018175 | January 2005 | JP |
| 2005087135 | April 2005 | JP |
| 2005134125 | May 2005 | JP |
| 2007228603 | September 2007 | JP |
| 2008172597 | July 2008 | JP |
| 20010055088 | July 2001 | KR |
| 9603823 | February 1996 | WO |
| 9810600 | March 1998 | WO |
| 0042721 | July 2000 | WO |
| 0072475 | November 2000 | WO |
| 0178434 | October 2001 | WO |
| 0184760 | November 2001 | WO |
| 0221183 | March 2002 | WO |
| 0230141 | April 2002 | WO |
| 02102102 | December 2002 | WO |
| 03024027 | March 2003 | WO |
| 03098175 | November 2003 | WO |
| 2004030154 | April 2004 | WO |
| 2004047472 | June 2004 | WO |
| 2004056019 | July 2004 | WO |
| 2004059934 | July 2004 | WO |
| 2004086795 | October 2004 | WO |
| 2004093471 | October 2004 | WO |
| 2005062505 | July 2005 | WO |
| 2005069203 | July 2005 | WO |
| 2005073897 | August 2005 | WO |
| 2005079386 | September 2005 | WO |
| 2005101701 | October 2005 | WO |
| 2005111959 | November 2005 | WO |
| 2006011778 | February 2006 | WO |
| 2006018592 | February 2006 | WO |
| 2006019392 | February 2006 | WO |
| 2006039941 | April 2006 | WO |
| 2006051262 | May 2006 | WO |
| 2006060754 | June 2006 | WO |
| 2006077569 | July 2006 | WO |
| 2006105185 | October 2006 | WO |
| 2006133609 | December 2006 | WO |
| 2006136811 | December 2006 | WO |
| 2007048427 | May 2007 | WO |
| 2007077451 | July 2007 | WO |
| 2007088561 | August 2007 | WO |
| 2007091026 | August 2007 | WO |
| 2008008249 | January 2008 | WO |
| 2008027213 | March 2008 | WO |
| 2008033298 | March 2008 | WO |
| 2008039830 | April 2008 | WO |
| 2008116014 | September 2008 | WO |
| 2009029077 | March 2009 | WO |
| 2006046088 | May 2009 | WO |
| 2010022156 | February 2010 | WO |
| 2010090999 | August 2010 | WO |
| 2010126667 | November 2010 | WO |
| 2010132739 | November 2010 | WO |
| 2011023592 | March 2011 | WO |
| 2011100095 | August 2011 | WO |
| 2011139939 | November 2011 | WO |
| 2012058061 | May 2012 | WO |
| 2012148938 | November 2012 | WO |
| 2012148940 | November 2012 | WO |
| 2013096563 | June 2013 | WO |
| 2013122915 | August 2013 | WO |
- Seto et al., “Optical Subcarrier Multiplexing Transmission for Base Station With Adaptive Array Antenna,” IEEE Transactions on Microwave Theory and Techniques, vol. 49, No. 10, Oct. 2001, pp. 2036-2041.
- Biton et al., “Challenge: CeTV and Ca-Fi—Cellular and Wi-Fi over Catv,” Proceedings of the Eleventh Annual International Conference on Mobile Computing and Networking, Aug. 28-Sep. 2, 2005, Cologne, Germany, Association for Computing Machinery, 8 pages.
- Non-Final Office Action for U.S. Appl. No. 13/948,536, mailed Jan. 16, 2015, 13 pages.
- International Search Report for PCT/IL2014/050657, mailed Dec. 1, 2014, 4 pages.
- Arredondo, Albedo et al., “Techniques for Improving In-Building Radio Coverage Using Fiber-Fed Distributed Antenna Networks,” IEEE 46th Vehicular Technology Conference, Atlanta, Georgia, Apr. 28-May 1, 1996, pp. 1540-1543, vol. 3.
- Bakaul, M., et al., “Efficient Multiplexing Scheme for Wavelength-Interleaved DWDM Millimeter-Wave Fiber-Radio Systems,” IEEE Photonics Technology Letters, Dec. 2005, vol. 17, No. 12, pp. 2718-2720.
- Cho, Bong Youl et al. “The Forward Link Performance of a PCS System with an AGC,” 4th CDMA International Conference and Exhibition, “The Realization of IMT-2000,” 1999, 10 pages.
- Chu, Ta-Shing et al. “Fiber optic microcellular radio”, IEEE Transactions on Vehicular Technology, Aug. 1991, pp. 599-606, vol. 40, Issue 3.
- Cooper, A.J., “Fiber/Radio for the Provision of Cordless/Mobile Telephony Services in the Access Network,” Electronics Letters, 1990, pp. 2054-2056, vol. 26.
- Cutrer, David M. et al., “Dynamic Range Requirements for Optical Transmitters in Fiber-Fed Microcellular Networks,” IEEE Photonics Technology Letters, May 1995, pp. 564-566, vol. 7, No. 5.
- Dolmans, G. et al. “Performance study of an adaptive dual antenna handset for indoor communications”, IEE Proceedings: Microwaves, Antennas and Propagation, Apr. 1999, pp. 138-144, vol. 146, Issue 2.
- Ellinger, Frank et al., “A 5.2 GHz variable gain LNA MMIC for adaptive antenna combining”, IEEE MTT-S International Microwave Symposium Digest, Anaheim, California, Jun. 13-19, 1999, pp. 501-504, vol. 2.
- Fan, J.C. et al., “Dynamic range requirements for microcellular personal communication systems using analog fiber-optic links”, IEEE Transactions on Microwave Theory and Techniques, Aug. 1997, pp. 1390-1397, vol. 45, Issue 8.
- Gibson, B.C., et al., “Evanescent Field Analysis of Air-Silica Microstructure Waveguides,” The 14th Annual Meeting of the IEEE Lasers and Electro-Optics Society, 1-7803-7104-4/01, Nov. 12-13, 2001, vol. 2, pp. 709-710.
- Huang, C., et al., “A WLAN-Used Helical Antenna Fully Integrated with the PCMCIA Carrier,” IEEE Transactions on Antennas and Propagation, Dec. 2005, vol. 53, No. 12, pp. 4164-4168.
- Kojucharow, K., et al., “Millimeter-Wave Signal Properties Resulting from Electrooptical Upconversion,” IEEE Transaction on Microwave Theory and Techniques, Oct. 2001, vol. 49, No. 10, pp. 1977-1985.
- Monro, T.M., et al., “Holey Fibers with Random Cladding Distributions,” Optics Letters, Feb. 15, 2000, vol. 25, No. 4, pp. 206-208.
- Moreira, J.D., et al., “Diversity Techniques for OFDM Based WLAN Systems,” The 13th IEEE International Symposium on Personal, Indoor and Mobile Radio Communications, Sep. 15-18, 2002, vol. 3, pp. 1008-1011.
- Niiho, T., et al., “Multi-Channel Wireless LAN Distributed Antenna System Based on Radio-Over-Fiber Techniques,” The 17th Annual Meeting of the IEEE Lasers and Electro-Optics Society, Nov. 2004, vol. 1, pp. 57-58.
- Author Unknown, “ITU-T G.652, Telecommunication Standardization Sector of ITU, Series G: Transmission Systems and Media, Digital Systems and Networks, Transmission Media and Optical Systems Characteristics—Optical Fibre Cables, Characteristics of a Single-Mode Optical Fiber and Cable,” ITU-T Recommendation G.652, International Telecommunication Union, Jun. 2005, 22 pages.
- Author Unknown, “ITU-T G.657, Telecommunication Standardization Sector of ITU, Dec. 2006, Series G: Transmission Systems and Media, Digital Systems and Networks, Transmission Media and Optical Systems Characteristics—Optical Fibre Cables, Characteristics of a Bending Loss Insensitive Single Mode Optical Fibre and Cable for the Access Network,” ITU-T Recommendation G.657, International Telecommunication Union, 20 pages.
- Author Unknown, RFID Technology Overview, Date Unknown, 11 pages.
- Opatic, D., “Radio over Fiber Technology for Wireless Access,” Ericsson, Oct. 17, 2009, 6 pages.
- Paulraj, a.J., et al., “An Overview of Mimo Communications—A Key to Gigabit Wireless,” Proceedings of the IEEE, Feb. 2004, vol. 92, No. 2, 34 pages.
- Pickrell, G.R., et al., “Novel Techniques for the Fabrication of Holey Optical Fibers,” Proceedings of SPIE, Oct. 28-Nov. 2, 2001, vol. 4578, 2001, pp. 271-282.
- Roh, W., et al., “MIMO Channel Capacity for the Distributed Antenna Systems,” Proceedings of the 56th IEEE Vehicular Technology Conference, Sep. 2002, vol. 2, pp. 706-709.
- Schweber, Bill, “Maintaining cellular connectivity indoors demands sophisticated design,” EDN Network, Dec. 21, 2000, 2 pages, http://www.edn.com/design/integrated-circuit-design/4362776/Maintaining-cellularconnectivity-indoors-demands-sophisticated-design.
- Seto, I., et al., “Antenna-Selective Transmit Diversity Technique for OFDM-Based WLANs with Dual-Band Printed Antennas,” 2005 IEEE Wireless Communications and Networking Conference, Mar. 13-17, 2005, vol. 1, pp. 51-56.
- Shen, C., et al., “Comparison of Channel Capacity for MIMO-Das versus Mimo-CAS,” The 9th Asia-Pacific Conference on Communications, Sep. 21-24, 2003, vol. 1, pp. 113-118.
- Wake, D. et al., “Passive Picocell: A New Concept n Wireless Network Infrastructure,” Electronics Letters, Feb. 27, 1997, vol. 33, No. 5, pp. 404-406.
- Windyka, John et al., “System-Level Integrated Circuit (SLIC) Technology Development for Phased Array Antenna Applications,” Contractor Report 204132, National Aeronautics and Space Administration, Jul. 1997, 94 pages.
- Winters, J., et al., “The Impact of Antenna Diversity on the Capacity of Wireless Communications Systems,” IEEE Transcations on Communications, vol. 42, No. 2/3/4, Feb./Mar./Apr. 1994, pp. 1740-1751.
- Yu et al., “A Novel Scheme to Generate Single-Sideband Millimeter-Wave Signals by Using Low-Frequency Local Oscillator Signal,” IEEE Photonics Technology Letters, vol. 20, No. 7, Apr. 1, 2008, pp. 478-480.
- Attygalle et al., “Extending Optical Transmission Distance in Fiber Wireless Links Using Passive Filtering in Conjunction with Optimized Modulation,” Journal of Lightwave Technology, vol. 24, No. 4, Apr. 2006, 7 pages.
- Bo Zhang et al., “Reconfigurable Multifunctional Operation Using Optical Injection-Locked Vertical-Cavity Surface-Emitting Lasers,” Journal of Lightwave Technology, vol. 27, No. 15, Aug. 2009, 6 pages.
- Chang-Hasnain, et al., “Ultrahigh-speed laser modulation by injection locking,” Chapter 6, Optical Fiber Telecommunication V A: Components and Subsystems, Elsevier Inc., 2008, 20 pages.
- Cheng Zhang et al., “60 GHz Millimeter-wave Generation by Two-mode Injection-locked Fabry-Perot Laser Using Second-Order Sideband Injection in Radio-over-Fiber System,” Conference on Lasers and Electro-Optics and Quantum Electronics, Optical Society of America, May 2008, 2 pages.
- Chrostowski, “Optical Injection Locking of Vertical Cavity Surface Emitting Lasers,” Fall 2003, PhD dissertation University of California at Berkely, 122 pages.
- Dang et al., “Radio-over-Fiber based architecture for seamless wireless indoor communication in the 60GHz band,” Computer Communications, Elsevier B.V., Amsterdam, NL, vol. 30, Sep. 8, 2007, pp. 3598-3613.
- Hyuk-Kee Sung et al., “Optical Single Sideband Modulation Using Strong Optical Injection-Locked Semiconductor Lasers,” IEEE Photonics Technology Letters, vol. 19, No. 13, Jul. 1, 2007, 4 pages.
- Lim et al., “Analysis of Optical Carrier-to-Sideband Ratio for Improving Transmission Performance in Fiber-Radio Links,” IEEE Transactions of Microwave Theory and Techniques, vol. 54, No. 5, May 2006, 7 pages.
- Lu H H et al., “Improvement of radio-on-multimode fiber systems based on light injection and optoelectronic feedback techniques,” Optics Communications, vol. 266, No. 2, Elsevier B.V., Oct. 15, 2006, 4 pages.
- Pleros et al., “A 60 GHz Radio-Over-Fiber Network Architecture for Seamless Communication With High Mobility,” Journal of Lightwave Technology, vol. 27, No. 12, IEEE, Jun. 15, 2009, pp. 1957-1967.
- Reza et al., “Degree-of-Polarization-Based PMD Monitoring for Subcarrier-Multiplexed Signals Via Equalized Carrier/Sideband Filtering,” Journal of Lightwave Technology, vol. 22, No. 4, IEEE, Apr. 2004, 8 pages.
- Zhao, “Optical Injection Locking on Vertical-Cavity Surface-Emitting Lasers (VCSELs): Physics and Applications,” Fall 2008, PhD dissertation University of California at Berkeley, pp. 1-209.
- Author Unknown, “VCSEL Chaotic Synchronization and Modulation Characteristics,” Master's Thesis, Southwest Jiatong University, Professor Pan Wei, Apr. 2006, 8 pages. (machine translation).
- Chowdhury et al., “Multi-service Multi-carrier Broadband MIMO Distributed Antenna Systems for In-building Optical Wireless Access,” Presented at the 2010 Conference on Optical Fiber Communication and National Fiber Optic Engineers Conference, Mar. 21-25, 2010, San Diego, California, IEEE, pp. 1-3.
Type: Grant
Filed: Jan 3, 2014
Date of Patent: Nov 3, 2015
Patent Publication Number: 20150195055
Assignee: Corning Optical Communications Wireless Ltd (Airport City)
Inventor: Dror Ben-Shlomo (Modiin)
Primary Examiner: Warner Wong
Application Number: 14/146,964
International Classification: H04J 1/12 (20060101); H04L 5/14 (20060101); H04L 1/00 (20060101); H04W 52/40 (20090101);